Structure-Property Relationships Under Extreme Dynamic Environments: Shock Recovery Experiments
暫譯: 極端動態環境下的結構-性質關係:衝擊恢復實驗

Williams, Cyril L., Zimmerman, Kristin B.

  • 出版商: Morgan & Claypool
  • 出版日期: 2019-01-02
  • 售價: $2,410
  • 貴賓價: 9.5$2,290
  • 語言: 英文
  • 頁數: 155
  • 裝訂: Quality Paper - also called trade paper
  • ISBN: 1681734524
  • ISBN-13: 9781681734521
  • 海外代購書籍(需單獨結帳)

商品描述

The inelastic response and residual mechanical properties acquired from most shock compressed solids are quite different from those acquired from quasi-static or moderate strain rates. For instance, the residual hardness of many shock compressed metals has been found to be considerably lower than those loaded under quasi-static conditions to the same maximum stress. However, the residual hardness of shock compressed metals is much higher than those loaded quasi-statically to the same total strain. These observations suggest that the deformation mechanisms active during inelastic deformation under shock compression and quasi-static or moderate rates may be quite different. Therefore, the primary objective of this short book is to offer the reader a concise introduction on the Structure-Property Relationships concerning shock compressed metals and metallic alloys via shock recovery experiments.

The first phase of the book, chapters 1 through 3 provides a brief historical perspective on the structure-property relationships as it pertains to shock compression science, then plastic deformation in shock compressed metals and metallic alloys is described in terms of deformation slip, deformation twinning, and their consequences to spall failure. Existing knowledge gaps and limitations on shock recovery experiments are also discussed. The fundamentals of shock wave propagation in condensed media are presented through the formation and stability of shock waves, then how they are treated using the Rankine-Hugoniot jump relations derived from the conservation of mass, momentum, and energy. The equation of states which govern the thermodynamic transition of a material from the unshock state to the shock state is briefly described and the elastic-plastic behavior of shock compressed solids is presented at the back end of the first phase of this book. The second phase of the book describes the geometry and design of shock recovery experiments using explosives, gas and powder guns. Then results derived from the residual mechanical properties, microstructure changes, and spall failure mechanisms in shock compressed metals and metallic alloys with FCC, BCC, and HCP crystal lattice structures are presented. Also, results on the residual microstructure of explosively compacted powders and powder mixtures are presented. Lastly, the book closes with the new frontiers in shock recovery experiments based on novel materials, novel microscopes, novel mechanical processing techniques, and novel time-resolved in-situ XRD shock experiments.

商品描述(中文翻譯)

在大多數震盪壓縮固體中獲得的非彈性反應和殘餘機械性質與在準靜態或中等應變速率下獲得的性質有著相當大的不同。例如,許多震盪壓縮金屬的殘餘硬度被發現顯著低於在準靜態條件下以相同最大應力加載的金屬。然而,震盪壓縮金屬的殘餘硬度卻遠高於在準靜態條件下以相同總應變加載的金屬。這些觀察結果表明,在震盪壓縮下的非彈性變形過程中,活躍的變形機制與準靜態或中等速率下的變形機制可能有著相當大的不同。因此,本書的主要目標是通過震盪恢復實驗,為讀者提供有關震盪壓縮金屬和金屬合金的結構-性質關係的簡明介紹。

本書的第一部分,第1至第3章,提供了與震盪壓縮科學相關的結構-性質關係的簡要歷史背景,然後描述了震盪壓縮金屬和金屬合金中的塑性變形,重點在於變形滑移、變形孿晶及其對剝落失效的影響。還討論了震盪恢復實驗中現有的知識空白和限制。通過震盪波的形成和穩定性,介紹了在凝聚介質中震盪波傳播的基本原理,然後說明了如何使用從質量、動量和能量守恆推導出的Rankine-Hugoniot跳躍關係來處理這些波。簡要描述了控制材料從未震盪狀態轉變為震盪狀態的狀態方程,並在本書第一部分的末尾介紹了震盪壓縮固體的彈性-塑性行為。本書的第二部分描述了使用炸藥、氣體和粉末槍進行震盪恢復實驗的幾何形狀和設計。然後,展示了震盪壓縮金屬和金屬合金(具有FCC、BCC和HCP晶格結構)中殘餘機械性質、微觀結構變化和剝落失效機制的結果。此外,還展示了爆炸壓實粉末和粉末混合物的殘餘微觀結構的結果。最後,本書以基於新材料、新顯微鏡、新機械加工技術和新型時間解析原位XRD震盪實驗的震盪恢復實驗新前沿作結。